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Reduced-order modeling of light transport in tissue for real-time monitoring of brain hemodynamics using diffuse optical tomography.

机译:使用漫射光学断层扫描技术对组织中的光传输进行降阶建模,以实时监测脑血流动力学。

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摘要

ABSTRACT. This paper proposes a new reconstruction method for diffuse optical tomography using reduced-order models of light transport in tissue. The models, which directly map optical tissue parameters to optical flux measurements at the detector locations, are derived based on data generated by numerical simulation of a reference model. The reconstruction algorithm based on the reduced-order models is a few orders of magnitude faster than the one based on a finite element approximation on a fine mesh incorporating a priori anatomical information acquired by magnetic resonance imaging. We demonstrate the accuracy and speed of the approach using a phantom experiment and through numerical simulation of brain activation in a rat's head. The applicability of the approach for real-time monitoring of brain hemodynamics is demonstrated through a hypercapnic experiment. We show that our results agree with the expected physiological changes and with results of a similar experimental study. However, by using our approach, a three-dimensional tomographic reconstruction can be performed in ∼3  s per time point instead of the 1 to 2 h it takes when using the conventional finite element modeling approach.
机译:抽象。本文提出了一种新的重建方法,用于使用组织中光传输的降阶模型进行漫射光学层析成像。这些模型将光学组织参数直接映射到检测器位置处的光通量测量值,是基于参考模型的数值模拟生成的数据得出的。基于降阶模型的重建算法要比基于有限元近似的精细算法(包含通过磁共振成像获取的先验解剖信息)的重建算法快几个数量级。我们使用幻像实验并通过对大鼠头部的大脑激活进行数值模拟,证明了该方法的准确性和速度。通过高碳酸血症实验证明了该方法对脑血流动力学实时监测的适用性。我们证明我们的结果与预期的生理变化以及类似实验研究的结果一致。但是,通过使用我们的方法,可以在每个时间点约3秒内完成三维层析成像重建,而不是使用传统的有限元建模方法所花费的1到2小时。

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